IP Library › Granted Patent US 12,381,616
Granted Patent B2
US 12,381,616 · App. 17/996,264 · Granted Aug 5, 2025

Relay-aided intelligent reconfigurable surfaces

Inventors: Ahmed Alkhateeb (Chandler, AZ); Umut Demirhan (Tempe, AZ); Xiaoyan Ying (Tempe, AZ)
Assignee: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
H04B7/15507H01Q15/14H01Q19/104H01Q19/18H04B7/0617
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Quick Facts
Patent No.
US 12,381,616
App. No.
17/996,264
Granted
Aug 5, 2025
Kind
B2
Abstract

Relay-aided intelligent reconfigurable surfaces (IRSs) are provided. A novel relay-aided intelligent surface architecture is described herein that has the potential of achieving the promising gains of IRSs with a much smaller number of elements, opening the door for realizing these surfaces in practice. A half-duplex or full-duplex relay is connected to one or more IRSs. This merges the gains of relays and reconfigurable surfaces and splits the required signal-to-noise ratio (SNR) gain between them. This architecture can then significantly reduce the required number of reconfigurable elements in the IRS(s) while achieving the same spectral efficiencies. Consequently, the proposed relay-aided intelligent surface architecture needs far less channel estimation/beam training overhead and provides enhanced robustness compared to traditional IRS solutions.

Claims (45)

1. A relay for an intelligent surface device, comprising:

a first antenna port configured to receive a first signal from a first intelligent reconfigurable surface (IRS);

amplification circuitry configured to amplify the first signal; and

a second antenna port configured to send the amplified first signal to be transmitted from a second IRS.

2. The relay of claim 1 , wherein:

the second antenna port is further configured to receive a second signal from the second IRS;

the amplification circuitry is further configured to amplify the second signal; and

the first antenna port is further configured to send the amplified second signal to be transmitted from the first IRS.

3. The relay of claim 1 , further comprising a first antenna coupled to the first antenna port and configured to receive the first signal via wireless communication with the first IRS.

4. The relay of claim 3 , wherein:

the first IRS and the second IRS are located apart from one another; and

the second antenna port is configured to send the amplified first signal via the wireless communication with the second IRS.

5. The relay of claim 1 , wherein the first antenna port is configured to receive the first signal via a wired connection to the first IRS.

6. The relay of claim 5 , wherein the second antenna port is configured to send the amplified first signal via the wired connection to the second IRS.

7. The relay of claim 6 , wherein:

the first IRS comprises the second IRS; and

the relay is embedded in the first IRS.

8. The relay of claim 7 , wherein:

the first antenna port is coupled to a first antenna element of the first IRS; and

the second antenna port is coupled to the first antenna element of the first IRS.

9. The relay of claim 7 , wherein:

the first antenna port is coupled to a first group of antenna elements of the first IRS; and

the second antenna port is coupled to a second group of the antenna elements of the first IRS distinct from the first group.

10. The relay of claim 7 , wherein each of the first antenna port and the second antenna port are coupled to a first group of antenna elements of the first IRS.

11. The relay of claim 5 , wherein the second antenna port is configured to send the amplified first signal via wireless communication with the second IRS.

12. The relay of claim 1 , further comprising a first antenna coupled to the first antenna port and a second antenna coupled to the second antenna port;

wherein each of the first antenna and the second antenna comprises one of a horn antenna or a phased antenna array.

13. A method for providing amplified signal reflection, the method comprising:

receiving a first signal at a first intelligent reconfigurable surface (IRS), the first IRS comprising a first array of reconfigurable elements;

beamforming and reflecting the first signal from the first IRS toward a relay; and

retransmitting the first signal from the relay to a second IRS, the second IRS comprising a second array of the reconfigurable elements.

14. The method of claim 13 , further comprising determining a first array response vector for beamforming the first signal toward the relay.

15. The method of claim 13 , further comprising amplifying the first signal at the relay.

16. The method of claim 13 , further comprising beamforming and reflecting the first signal from the second IRS toward a receiving device.

17. A wireless communications system, comprising:

a first intelligent reconfigurable surface (IRS) comprising a first array of reconfigurable elements; and

a first relay configured to:

amplify and relay a first signal from the first IRS to a second IRS; and

amplify and relay a second signal from the second IRS to the first IRS.

18. The wireless communications system of claim 17 , wherein:

the first relay receives the first signal from a first group of antenna elements of the first IRS; and

the wireless communications system further comprises a second relay configured to amplify and relay a third signal from a second group of the antenna elements of the first IRS to the second IRS.

19. The wireless communications system of claim 18 , wherein the first relay and the second relay have shared signal processing circuitry.

20. The wireless communications system of claim 17 , wherein the first IRS is collocated and oriented substantially parallel with the second IRS.

21. The wireless communications system of claim 17 , wherein the first IRS and the second IRS are separated from one another.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE ADD OMITTED ASSIGNOR XIAOYAN YING PREVIOUSLY RECORDED AT REEL: 062085 FRAME: 0038. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jul 28, 2023
From: ALKHATEEB, AHMED; YING, XIAOYAN; DEMIRHAN, UMUT
To: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
Reel/Frame 064424/0495 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ADD THE OMITTED ASSIGNOR AND ASSIGNOR EXECUTION DATES PREVIOUSLY RECORDED AT REEL: 062085 FRAME: 0038. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jul 28, 2023
From: ALKHATEEB, AHMED; YING, XIAOYAN; DEMIRHAN, UMUT
To: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
Reel/Frame 064424/0596 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2022
From: ALKHATEEB, AHMED; DEMIRHAN, UMUT
To: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
Reel/Frame 062085/0038 →
Continuity (2)
Provisional Application 63038070 · Jun 11, 2020
Related Publication 20230198605A1 · Jun 22, 2023
References Cited (25)
US 20030016737A1 · Wu et al. · 2003 [cited by applicant]
US 20190327625A1 · Patel et al. · 2019 [cited by applicant]
US 20200028262A1 · Fang · 2020 [cited by examiner]
US 20200136718A1 · Fang · 2020 [cited by applicant]
International Search Report and Written Opinion mailed Sep. 16, 2021 in corresponding International Application No. PCT/US2021/036953, 13 pages. [cited by applicant]
3GPP TR 38.901 version 14.1.1 Release 14, “Study on channel model for frequencies from 0.5 to 100 GHz,” , Tech. Rep., 2017. [cited by applicant]
Alkhateeb et al., “MIMO precoding and combining solutions for millimeter-wave systems,” IEEE Commun. Mag., vol. 52, No. 12, pp. 122-131, Dec. 2014. [cited by applicant]
Alkhateeb et al., “Deep learning coordinated beamforming for highly-mobile millimeter wave systems,” IEEE Access, vol. 6, pp. 37 328-37 348, 2018. [cited by applicant]
Basar et al., “Wireless communications through reconfigurable intelligent surfaces,” IEEE Access, vol. 7, pp. 116 753-116 773, 2019. [cited by applicant]
Bjornson et al., “Intelligent reflecting surface vs. decode-and-forward: How large surfaces are needed to beat relaying?” IEEE Wireless Commun. Lett., Feb. 2020. [cited by applicant]
Bjornson et al.,“Power scaling laws and near-field behaviors of massive MIMO and intelligent reflecting surfaces,” Sep. 2020. [cited by applicant]
Bohagen et al. “Design of optimal high-rank line-of-sight MIMO channels,” IEEE Trans. Wireless Commun., vol. 6, No. 4, pp. 1420-1425, Apr. 2007. [cited by applicant]
Cheng et al., “Channel modeling and analysis of ULA massive MIMO systems,” in Proc. 20th Int. Conf. Advanced Communication Technology (ICACT), Feb. 2018, pp. 411-416. [cited by applicant]
Direnzo et al., “Reconfigurable in-telligent surfaces vs. relaying: Differences, similarities, and performance comparison,” 798-807, Jul. 2020. [cited by applicant]
Direnzo et al., , “Smart radio environments empowered by reconfigurable intelligent surfaces: How it works, state of research, and road ahead,” 2450-2525, Nov. 2020. [cited by applicant]
Heath et al., “An overview of signal processing techniques for millimeter wave MIMO systems,” IEEE Journal of Selected Topics in Signal Processing, vol. 10, No. 3, pp. 436-453, Apr. 2016. [cited by applicant]
Hu et al.,“Beyond massive MIMO: The potential of data transmission with large intelligent surfaces,” IEEE Trans. Signal Process., vol. 66, No. 10, pp. 2746-2758, May 2018. [cited by applicant]
Huang et al., “Reconfigurable intelligent surfaces for energy efficiency in wireless communication,” IEEE Trans. Wireless Commun., vol. 18, No. 8, pp. 4157-4170, Aug. 2019. [cited by applicant]
Laneman et al., “Cooperative diversity in wireless networks: Efficient protocols and outage behavior,” IEEE Trans. Inf. Theory, vol. 50, No. 12, pp. 3062-3080, Dec. 2004. [cited by applicant]
Larsson et al., “Massive MIMO for next generation wireless systems,” IEEE Commun. Mag., vol. 52, No. 2, pp. 186-195, Feb. 2014. [cited by applicant]
Lu et al., “An overview of massive MIMO: Benefits and challenges,” IEEE J. Sel. Topics Signal Process., vol. 8, No. 5, pp. 742-758, Oct. 2014. [cited by applicant]
Marzetta, “Noncooperative cellular wireless with unlimited numbers of base station antennas,” IEEE Transactions on Wireless Communica-tions, vol. 9, No. 11, pp. 3590-3600, Nov. 2010. [cited by applicant]
Roh et al., “Millimeter-wave beamforming as an enabling technology for 5g cellular communications: theoretical feasibility and prototype results,” IEEE Commun. Mag., vol. 52, No. 2, pp. 106-113, Feb. 2014. [cited by applicant]
Taha et al., “Enabling Large Intelligent Surfaces with Compressive Sensing and Deep Learning,” arXiv e-prints, p. arXiv:1904.10136, Apr. 2019. [cited by applicant]
Taha et al., “Deep reinforcement learning for intelligent reflecting surfaces: Towards standalone operation,” 2020, 5 pages. [cited by applicant]
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